An oscillator which oscillates at a predetermined frequency includes a first inverting amplifier and a second inverting amplifier connected in antiparallel with each other, a surface acoustic wave resonator connected in parallel with one of the first inverting amplifier and the second inverting amplifier, and a filter connected between the first inverting amplifier and the second inverting amplifier for blocking a direct-current signal while allowing a signal of the predetermined frequency to pass.
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10. A voltage controlled oscillator oscillating at a frequency in accordance with a control voltage, said voltage controlled oscillator comprising:
first and second transistors each having first, second and third electrodes; a surface acoustic wave resonator connected between said first electrodes of said first and second transistors; first current blocking filter connected between said second electrode of said first transistor and said first electrode of said second transistor; second current blocking filter connected between said second electrode of said second transistor and said first electrode of said first transistor; voltage controlled current source connected between said third electrodes of said first and second transistors and providing a current according to said control voltage; first and second current limiting circuits, each provided between said voltage controlled current source and said third electrodes of said first and second transistors; and a capacitor connected in parallel with said surface acoustic wave resonator.
8. A voltage controlled oscillator oscillating at a frequency in accordance with a control voltage, said voltage controlled oscillator comprising:
first and second transistors each having first, second and third electrodes; a surface acoustic wave resonator connected between said first electrodes of said first and second transistors; first current blocking filter connected between said second electrode of said first transistor and said first electrode of said second transistor; second current blocking filter connected between said second electrode of said second transistor and said first electrode of said first transistor; voltage controlled current source connected between said third electrodes of said first and second transistors and providing a current according to said control voltage; first and second current limiting circuits, each provided between said voltage controlled current source and said third electrodes of said first and second transistors; and an inductor connected in parallel with said surface acoustic wave resonator.
6. A voltage controlled oscillator oscillating at a frequency in accordance with a control voltage, said voltage controlled oscillator comprising:
first and second transistors each having first, second and third electrodes; a surface acoustic wave resonator connected between said first electrodes of said first and second transistors; first current blocking filter connected between said second electrode of said first transistor and said first electrode of said second transistor; second current blocking filter connected between said second electrode of said second transistor and said first electrode of said first transistor; voltage controlled current source connected between said third electrodes of said first and second transistors and providing a current according to said control voltage; first and second current limiting circuits, each provided between said voltage controlled current source and said third electrodes of said first and second transistors; and a resistance element connected in parallel with said surface acoustic wave resonator.
9. A voltage controlled oscillator oscillating at a frequency in accordance with a control voltage, said voltage controlled oscillator comprising:
first and second transistors each having first, second and third electrodes; a surface acoustic wave resonator connected between said first electrodes of said first and second transistors; first current blocking filter connected between said second electrode of said first transistor and said first electrode of said second transistor; second current blocking filter connected between said second electrode of said second transistor and said first electrode of said first transistor; voltage controlled current source connected between said third electrodes of said first and second transistors and providing a current according to said control voltage; first and second current limiting circuits, each provided between said voltage controlled current source and said third electrodes of said first and second transistors; and a capacitor connected in series with said surface acoustic wave resonator between the first electrodes of said first and second transistors.
7. A voltage controlled oscillator oscillating at a frequency in accordance with a control voltage, said voltage controlled oscillator comprising:
first and second transistors each having first, second and third electrodes; a surface acoustic wave resonator connected between said first electrodes of said first and second transistors; first current blocking filter connected between said second electrode of said first transistor and said first electrode of said second transistor; second current blocking filter connected between said second electrode of said second transistor and said first electrode of said first transistor; voltage controlled current source connected between said third electrodes of said first and second transistors and providing a current according to said control voltage; first and second current limiting circuits, each provided between said voltage controlled current source and said third electrodes of said first and second transistors; and an inductor connected in series with said surface acoustic wave resonator between said first electrodes of said first and second transistors.
3. A voltage controlled oscillator oscillating at a frequency in accordance with a control voltage, the voltage controlled oscillator comprising:
a pair of differential transistors, in which a first electrode of one transistor is connected to a first electrode of the other transistor, and an input electrode of one transistor is connected to a second electrode of the other transistor with regard to each of the transistors; a surface acoustic wave resonator connected between the second electrodes of said pair of differential transistors; a first capacitor coupled between the input electrode of at least one transistor of said pair of differential transistors and the second electrode of the other transistor; a voltage controlled current source connected to the first electrodes of said pair of differential transistors for flowing currents having a value in accordance with said control voltage; first and second current limiting circuits, each provided between said voltage controlled current source and said first electrodes of said differential transistors; and an inductor connected in parallel with said surface acoustic wave resonator.
5. A voltage controlled oscillator oscillating at a frequency in accordance with a control voltage, the voltage controlled oscillator comprising:
a pair of differential transistors, in which a first electrode of one transistor is connected to a first electrode of the other transistor, and an input electrode of one transistor is connected to a second electrode of the other transistor with regard to each of the transistors; a surface acoustic wave resonator connected between the second electrodes of said pair of differential transistors; a first capacitor coupled between the input electrode of at least one transistor of said pair of differential transistors and the second electrode of the other transistor; a voltage controlled current source connected to the first electrodes of said pair of differential transistors for flowing currents having a value in accordance with said control voltage; first and second current limiting circuits, each provided between said voltage controlled current source and said first electrodes of said differential transistors; and a second capacitor connected in parallel with said surface acoustic wave resonator.
1. A voltage controlled oscillator oscillating at a frequency in accordance with a control voltage, the voltage controlled oscillator comprising:
a pair of differential transistors, in which a first electrode of one transistor is connected to a first electrode of the other transistor, and an input electrode of one transistor is connected to a second electrode of the other transistor with regard to each of the transistors; a surface acoustic wave resonator connected between the second electrodes of said pair of differential transistors; a first capacitor coupled between the input electrode of at least one transistor of said pair of differential transistors and the second electrode of the other transistor; a voltage controlled current source connected to the first electrodes of said pair of differential transistors for flowing currents having a value in accordance with said control voltage; first and second current limiting circuits, each provided between said voltage controlled current source and said first electrodes of said differential transistors; and a resistance element connected in parallel with said surface acoustic wave resonator.
2. A voltage controlled oscillator oscillating at a frequency in accordance with a control voltage, the voltage controlled oscillator comprising:
a pair of differential transistors, in which a first electrode of one transistor is connected to a first electrode of the other transistor, and an input electrode of one transistor is connected to a second electrode of the other transistor with regard to each of the transistors; a surface acoustic wave resonator connected between the second electrodes of said pair of differential transistors; a first capacitor coupled between the input electrode of at least one transistor of said pair of differential transistors and the second electrode of the other transistor; a voltage controlled current source connected to the first electrodes of said pair of differential transistors for flowing currents having a value in accordance with said control voltage; first and second current limiting circuits, each provided between said voltage controlled current source and said first electrodes of said differential transistors; and an inductor connected in series with said surface acoustic wave resonator between the second electrodes of said pair of differential transistors.
4. A voltage controlled oscillator oscillating at a frequency in accordance with a control voltage, the voltage controlled oscillator comprising:
a pair of differential transistors, in which a first electrode of one transistor is connected to a first electrode of the other transistor, and an input electrode of one transistor is connected to a second electrode of the other transistor with regard to each of the transistors; a surface acoustic wave resonator connected between the second electrodes of said pair of differential transistors; a first capacitor coupled between the input electrode of at least one transistor of said pair of differential transistors and the second electrode of the other transistor; a voltage controlled current source connected to the first electrodes of said pair of differential transistors for flowing currents having a value in accordance with said control voltage; first and second current limiting circuits, each provided between said voltage controlled current source and said first electrodes of said differential transistors; and a second capacitor connected in series with said surface acoustic wave resonator between the second electrodes of said pair of differential transistors.
11. A voltage controlled oscillator according to
12. A voltage controlled oscillator according to
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1. Field of the Invention
The present invention relates to oscillators and voltage controlled oscillators, and, more particularly, relates to an oscillator and a voltage controlled oscillator which have a surface acoustic wave resonator.
2. Description of the Related Art
In
The oscillating frequency of the oscillation circuit 60 is determined by the resonance frequency of the SAW resonator 51 and the capacitance of the oscillation circuit 60. The oscillating frequency of the oscillation circuit 60 varies because the capacitance of the varicap 57 changes in accordance with change of the input voltage VI to the oscillation circuit 60. Therefore, an output signal VO having a desired frequency can be obtained by adjusting the input voltage VI. This oscillation circuit is widely used as a reference-signal generator for a television tuner, a portable communication device, and the like.
The oscillating frequency of this differential-LC VCO is determined by the parallel resonant frequency of the parallel LC circuit 71 and the internal capacitance of each of the NPN transistors 76 and 77 which are connected in parallel with the parallel LC circuit 71. Because the capacitance of each of the NPN transistors 76 and 77 is varied by the values of the currents passing through the NPN transistors 76 and 77, the oscillating frequency of the VCO can be adjusted by causing an external control voltage to control the current of the voltage controlled current source 78. This circuit is utilized by an integrated circuit for television, and the like.
However, the Colpitts VCO shown in
In the differential-LC VCO in
Accordingly, it is an object of the present invention to provide an oscillator and a voltage controlled oscillator which are highly resistant to noise, have accurate oscillation without adjustment, have high reliability, require less components, and are inexpensive and compact.
To this end, according to a first aspect of the present invention, there is provided an oscillator oscillating at a predetermined frequency. The oscillator includes a first inverting amplifier and a second inverting amplifier connected in antiparallel with each other, a surface acoustic wave resonator connected in parallel with one of said first inverting amplifier and said second inverting amplifier and a filter connected between said first inverting amplifier and said second inverting amplifier for blocking a direct-current signal while allowing a signal of said predetermined frequency to pass.
Since the direct current signal is blocked by the filter, the oscillating frequency of this oscillator is determined primarily by the parallel resonant frequency of the surface acoustic wave resonator.
This oscillator is not susceptible to the influence of external noise flowing via the power source and, conversely, is unlikely to convey noise to other circuits, compared to the Colpitts, due to a differential circuit employed therein. Also, the number of components of the oscillator is small, which makes miniaturization easy and is effective for reducing costs. Furthermore, because a capacitor having large capacitance is not used, it is possible to integrate a circuit. By integrating the entire circuit including the resonator, or the circuit other than the resonator, further miniaturization as well as further reduction in costs is possible. Effects of reduction in the number of components includes improving reliability of the oscillator.
Since, in the differential LC oscillator, when the Q-factor of the inductor is low, the Q-factor of the oscillator inevitably becomes low, which makes the stability of the oscillating frequency worse. On the other hand, since this oscillator uses a SAW resonator, accurate and highly stable oscillation can be obtained without adjustment. Moreover, since a variable component which needs mechanical adjustment is not used, reliability becomes high and deterioration with age becomes less.
According to a second aspect of the present invention, there is provided a voltage controlled oscillator which oscillates at a frequency in accordance with a control voltage. The voltage controlled oscillator includes a pair of differential transistors, in which a first electrode of one transistor is connected to a first electrode of the other transistor and an input electrode of one transistor is connected to a second electrode of the other transistor with regard to each of the transistors, a surface acoustic wave resonator connected between the second electrodes of the pair of differential transistors, a first capacitor coupled between the input electrode of at least one transistor of the pair of differential transistors and the second electrode of the other transistor, and a voltage controlled current source connected to the first electrodes of the pair of differential transistors for flowing currents having a value in accordance with the control voltage.
Because the first capacitor blocks the direct current, the oscillating frequency of this voltage controlled oscillator is determined primarily by the parallel resonant frequency of the surface acoustic wave resonator and the value of current flowing via the pair of differential transistors. This voltage controlled oscillator also enables the same effect as obtained by the invention according to a first aspect of the invention to be obtained.
The voltage controlled oscillator may further have a resistance element connected in parallel to the surface acoustic wave resonator. In this case, the variable frequency range is expanded.
The voltage controlled oscillator may further have an inductor connected in series to the surface acoustic wave resonator between the second electrodes of the pair of differential transistors. In this case, the variable frequency range is expanded.
The voltage controlled oscillator may further have an inductor connected in parallel to the surface acoustic wave resonator. In this case, the variable frequency range is expanded.
The voltage controlled oscillator may further have a second capacitor connected in series to the surface acoustic wave resonator between the second electrodes of the pair of differential transistors. In this case, the variable frequency range becomes narrowed, whereby oscillation becomes more stable.
The voltage controlled oscillator may further have a second capacitor connected in parallel to the surface acoustic wave resonator. In this case, the variable frequency range becomes narrowed, whereby oscillation becomes more stable.
The SAW resonator 1 is connected between the collector (a node N1) of the NPN transistor 6 and the collector (a node N2) of the NPN transistor 7. The collectors of the NPN transistors 6 and 7 are connected via the resistance elements 2 and 3, respectively, to a power line of a source potential Vcc. The bases of the NPN transistors 6 and 7 are connected via the capacitors 4 and 5 to the collectors of the NPN transistors 7 and 6, respectively. The emitters of the NPN transistors 6 and 7 are connected via the resistance elements 8 and 9, respectively, to a node N10. The NPN transistors 6 and 7 constitute a pair of differential transistors. The voltage controlled current source 10 is connected between the node N10 and a ground line of a ground potential GND, and provides current in accordance with an external control voltage. A voltage between the nodes N1 and N2 corresponds to an output signal.
The operation of the differential-resonator VCO will now be described with comparison to that of conventional VCOs. The Colpitts type VCO is basically constructed by looping an amplifier 11 and a resonator 12, as shown in FIG. 2A. When the resonator 12 oscillates at the resonant frequency, the impedance of the resonator 12 has a minimum value and the loop gain of the circuit has a maximum value. Therefore, the Colpitts type VCO oscillates at the resonant frequency of the resonator 12.
The differential-LC type VCO is basically constructed by, as shown in
The impedance of the parallel LC circuit 15 has a maximum at the parallel resonant frequency. The more the frequency of the parallel LC circuit 15 deviates from the parallel resonant frequency, the more the impedance thereof monotonically decreases. However, a model circuit of the SAW resonator 1 includes, as shown in
A differential-resonator type VCO, as shown in
The circuit diagram in
The oscillating frequency of this differential-resonator VCO is determined by the resonant frequency f0 of the SAW resonator 1 and the internal capacitance of each of the NPN transistors 6 and 7 in parallel with the SAW resonator 1. Because the capacitance of each of the NPN transistors 6 and 7 is varied by the values of currents passing through the NPN transistors 6 and 7, the oscillating frequency of the VCO can be controlled by causing the external control voltage to control the current value of the current source 10. The oscillating frequency signal is output from across the nodes N1 and N2.
The resistance elements 8 and 9 may optionally be omitted. Although both capacitors 4 and 5 are preferable in order to maintain equilibrium of the circuit, one of them may suffice when there are limitations concerning the layout of the circuit. Also, the circuit-may be constructed in discrete components. However, in this case the NPN transistors 6 and 7 having uniform quality must be selected. Miniaturization of the VCO can be achieved by integrating the components other than the resonator 1. When the resonator 1 can be prepared by molding, the resonator 1 can be made in a single chip.
Hereinbelow, various modifications of this embodiment are described. In a modification illustrated in
In a modification illustrated in
In a modification illustrated in
In a modification illustrated in
In a modification in
It should be understood that the present disclosure of preferred forms of the present invention are exemplary and not limited in every respect. The scope of the invention is defined by the appended claims rather than by the description preceding them, and all changes that fall within the scope of the claims, or equivalence of such scope of the claims, are intended to be included by the claims.
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